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Cadenza CW-C18 - Wide pore에 의한 고속 분리 ODS 컬럼

Cadenza

<span class="featureDot">●</span> 와이드 포어 (30 nm) 실리카 ODS 컬럼

<span class="featureDot">●</span> 독자적인 고분자 엔드캡핑 기술 적용

<span class="featureDot">●</span> 항생제, 염기성 화합물, 인지질, 세라마이드 분석에 최적화

<span class="featureDot">●</span> 분자량이 큰 화합물의 효율적 분리

<span class="featureDot">●</span> 고처리량 (High-throughput) 분석 지원

<span class="featureDot">●</span> 다양한 컬럼 사이즈 제공 : 내경 (ID) 0.075 ~ 28 mm / 길이 10 ~ 500 mm

Cadenza CW-C18 - Wide pore에 의한 고속 분리 ODS 컬럼

Features

 와이드 포어 (30 nm) 실리카 ODS 컬럼

 독자적인 고분자 엔드캡핑 기술 적용

 항생제, 염기성 화합물, 인지질, 세라마이드 분석에 최적화

 분자량이 큰 화합물의 효율적 분리

 고처리량 (High-throughput) 분석 지원

 다양한 컬럼 사이즈 제공 : 내경 (ID) 0.075 ~ 28 mm / 길이 10 ~ 500 mm

SPECIFICATIONS

Main Specifications

Particle size

3 μm (Cadenza CW-C18)

5 μm (Cadenza 5CW-C18)

Base materials 완전다공성 고순도 실리카겔 (Fully porous, high-purity silica gel)
Pore size 30 nm
Ligand 옥타데실기 (Octadecyl group)
End-capping 있음 (고분자 엔드캡핑, Polymeric end-capping)
Target molecular weight 30 kDa 이하
pH range pH 1.5 - 9
Maximum pressure 250 bar / 3,500 psi / 25 MPa
USP Code L1

왜 기존 ODS 컬럼은 큰 분자에 약한가

최근 의약품은 구조가 복잡해지고 있고, 일부는 분자량이 1,000 Da를 넘는 경우도 있습니다. 이처럼 큰 분자는 기존 ODS 컬럼 (Pore size 10~15nm)에서 잘 분리되지 않습니다. 좁은 기공을 통과하기 어렵기 때문에 피크 모양이 흐려지고 분리 성능도 떨어지며, 작은 기공에서는 엔드캡핑도 충분히 이루어지지 않아 잔존 실라놀의 영향이 커지는 것도 원인입니다.

Wide Pore + 고분자 엔드캡핑의 결합

Cadenza CW-C18은 이런 문제를 해결한 컬럼입니다. 와이드 포어 (Wide Pore, 30 nm) 실리카를 사용해 큰 분자도 안정적으로 분리할 수 있습니다. 여기에 Cadenza CD-C18과 동일한 ODS 리간드 기술과, IMTAKT만의 고분자 엔드캡핑 (Polymeric End-Capping) 기술을 더해 안정성과 재현성을 확보했습니다.

짧아진 유지시간, 유지되는 소수성 인식력

CW-C18의 비표면적은 CD-C18의 약 1/3 수준으로, 동일 조건에서 유지 (Retention)는 짧아지지만, 소수성 인식 능력 (소수성 상호작용)은 동일하게 유지됩니다.

그 결과, 어떤 분석에 유리한가

  • 대분자·고소수성 화합물 (예: 인지질) 분석에 유리
  • 효율적인 엔드캡핑 처리로 염기성 화합물·항생제 분석 성능 개선
  • 100% 수계 이동상 사용 가능, 고극성 물질 분석에도 적합

즉, Cadenza CW-C18은 기존 ODS 컬럼의 한계를 넘어, 폭넓은 시료 분석을 지원하는 와이드 포어 ODS 컬럼입니다.

관련 애플리케이션 검색 (실시간 연동)

Cadenza CW-C18으로 진행된 모든 애플리케이션 데이터와 유저 리포트를 실시간으로 검색할 수 있습니다. (영문 사이트와 동일한 데이터베이스를 사용하여 새로운 자료가 등록되는 즉시 반영됩니다.)

Cadenza CW-C18 애플리케이션 전체보기 →

애플리케이션 (Applications)

최신 애플리케이션

유저 리포트 (User Reports)

유저 논문·학술 자료 (User Articles)

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PLOS ONE, April 10, 2023
https://doi.org/10.1371/journal.pone.0281175


LASP1, CERS6, and Actin Form a Ternary Complex That Promotes Cancer Cell Migration

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Dietary and socioeconomic risk factors for fumonisin exposure among women of reproductive age in 18 municipalities in Guatemala from 2013 to 2014

Ariel V. Garsow, Olga R. Torres, Jorge A. Matute, Ronald T. Riley, Julie R. Harris, Archana P. Lamichhane, Orion McCotter, Barbara B. Kowalcyk
PLOS Global Public Health, August 9, 2022
https://doi.org/10.1371/journal.pgph.0000337


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Cancer Science. 2021;112:2770-2780
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https://doi.org/10.1111/jcmm.15817


Pyrrocidine, a molecular off switch for fumonisin biosynthesis

Minglu Gao, Anthony E. Glenn, Xi Gu, Trevor R. Mitchell, Timothy Satterlee, Mary V. Duke, Brian E. Scheffler, Scott E. Gold
PLOS Pathogens, July 6, 2020
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Nagoya Journal of Medical Science, 82, 261-280, 2020


Occurrence of emerging mycotoxins in cereals and cereal-based products from the Korean market using LC-MS/MS

Dan-Bi Kim, Nho-Eul Song, Tae Gyu Nam, Sanghee Lee, Dongwon Seo & Miyoung Yoo
Food Additives & Contaminants: Part A, 36, 2, 289-295, 2019


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Joohwan Kim, Sungjun Kim, Hyun-Jung Noh, Shin-Young Ryu, Soo-Jin Kim
Journal of Pharmaceutical and Biomedical Analysis, 171, 15, 99-103, 2019


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C.W. Bacon, D.M. Hinton, T.R. Mitchell, E.R. Palencia
Journal of Applied Microbiology, 125, 4, 976-985, 2018


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Stephanie L. Bolton, Trevor Mitchell, Phillip M. Brannen, Anthony E. Glenn
American Journal of Enology and Viticulture, 68, 336-343, 2017


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Geon-Soo Ha. Jin-Hyun Kim
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Journal of Visualized Experiments, 115, e54402, 2016


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The Journal of Clinical Investigation, 126(1), 254-265, 2016


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A blood spot method for detecting fumonisin-induced changes in putative sphingolipid biomarkers in LM/Bc mice and humans

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